材料科学
压力传感器
电容感应
电极
导电体
光电子学
灵敏度(控制系统)
信号(编程语言)
复合数
电介质
声学
响应时间
图层(电子)
电接点
电阻式触摸屏
可穿戴计算机
动态范围
压力测量
复合材料
纳米技术
电子工程
电阻抗
电子皮肤
纳米线
探测器
接触面积
可穿戴技术
微观结构
电容
作者
Maogao Gong,Desheng Tu,Zitian Li,Xu He,Jinghui Zhang,Zi Wang,Ziyuan Zhou,Zihan Lin,X J Wang,Qi Hong,Yunong Zhao,Xiaohui Guo
摘要
ABSTRACT Advancements in flexible pressure sensors have been substantial. However, traditional configurations are restricted in pressure‑response scope owing to structural stiffening. Inspired by biological structures, we present an iontronic flexible pressure sensor featuring a microstructured electrode to amplify contact area variation under pressure. This architecture enhances the device's deformability while minimizing initial contact area, leading to high sensitivity. In addition, the sensor employs a composite ionic dielectric layer composed of polyvinyl alcohol and [BMIM]BF 4 , thereby enhancing ion transport efficiency, and silver nanowires serve as the conductive electrode component to maintain reliable electrical conduction during mechanical deformation. In the operational range of 0–335 kPa, the device demonstrates a highest sensitivity of 10.856 ± 0.114 kPa −1 , coupled with a response duration of 62.5 ± 8.3 ms and a recovery period of 75 ± 10.2 ms, as supported by experimental measurements. After 3000 consecutive cycles under external loads of 2.5 and 250 kPa, the sensor showed no significant signal attenuation, indicating its excellent mechanical durability. In wearable applications, this sensor reliably detects gestures and sign language through capacitive sensing, thanks to its highly repeatable performance and stable dynamic response, demonstrating great potential for use in motion detection.
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